Nanostructure engineering via intramolecular construction of carbon nitride as efficient photocatalyst for co2 reduction

Light-driven heterogeneous photocatalysis has gained great significance for generating solar fuel; the challenging charge separation process and sluggish surface catalytic reactions significantly restrict the progress of solar energy conversion using a semiconductor photocatalyst. Herein, we propose...

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Published in:Nanomaterials
Main Author: Sohail M.; Altalhi T.; Al-Sehemi A.G.; Taha T.A.M.; El-Nasser K.S.; Al-Ghamdi A.A.; Boukhari M.; Palamanit A.; Hayat A.; Amin M.A.; Ismail W.I.N.B.W.
Format: Article
Language:English
Published: MDPI 2021
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85120072644&doi=10.3390%2fnano11123245&partnerID=40&md5=a120838c91f5e03fddf84ed3808edd41
id 2-s2.0-85120072644
spelling 2-s2.0-85120072644
Sohail M.; Altalhi T.; Al-Sehemi A.G.; Taha T.A.M.; El-Nasser K.S.; Al-Ghamdi A.A.; Boukhari M.; Palamanit A.; Hayat A.; Amin M.A.; Ismail W.I.N.B.W.
Nanostructure engineering via intramolecular construction of carbon nitride as efficient photocatalyst for co2 reduction
2021
Nanomaterials
11
12
10.3390/nano11123245
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85120072644&doi=10.3390%2fnano11123245&partnerID=40&md5=a120838c91f5e03fddf84ed3808edd41
Light-driven heterogeneous photocatalysis has gained great significance for generating solar fuel; the challenging charge separation process and sluggish surface catalytic reactions significantly restrict the progress of solar energy conversion using a semiconductor photocatalyst. Herein, we propose a novel and feasible strategy to incorporate dihydroxy benzene (DHB) as a conjugated monomer within the framework of urea containing CN (CNU-DHBx) to tune the electronic conductivity and charge separation due to the aromaticity of the benzene ring, which acts as an electrondonating species. Systematic characterizations such as SPV, PL, XPS, DRS, and TRPL demonstrated that the incorporation of the DHB monomer greatly enhanced the photocatalytic CO2 reduction of CN due to the enhanced charge separation and modulation of the ionic mobility. The significantly enhanced photocatalytic activity of CNU–DHB15.0 in comparison with parental CN was 85 µmol/h for CO and 19.92 µmol/h of the H2 source. It can be attributed to the electron–hole pair separation and enhance the optical adsorption due to the presence of DHB. Furthermore, this remarkable modification affected the chemical composition, bandgap, and surface area, encouraging the controlled detachment of light-produced photons and making it the ideal choice for CO2 photoreduction. Our research findings potentially offer a solution for tuning complex charge separation and catalytic reactions in photocatalysis that could practically lead to the generation of artificial photocatalysts for efficient solar energy into chemical energy conversion. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
MDPI
20794991
English
Article
All Open Access; Gold Open Access; Green Open Access
author Sohail M.; Altalhi T.; Al-Sehemi A.G.; Taha T.A.M.; El-Nasser K.S.; Al-Ghamdi A.A.; Boukhari M.; Palamanit A.; Hayat A.; Amin M.A.; Ismail W.I.N.B.W.
spellingShingle Sohail M.; Altalhi T.; Al-Sehemi A.G.; Taha T.A.M.; El-Nasser K.S.; Al-Ghamdi A.A.; Boukhari M.; Palamanit A.; Hayat A.; Amin M.A.; Ismail W.I.N.B.W.
Nanostructure engineering via intramolecular construction of carbon nitride as efficient photocatalyst for co2 reduction
author_facet Sohail M.; Altalhi T.; Al-Sehemi A.G.; Taha T.A.M.; El-Nasser K.S.; Al-Ghamdi A.A.; Boukhari M.; Palamanit A.; Hayat A.; Amin M.A.; Ismail W.I.N.B.W.
author_sort Sohail M.; Altalhi T.; Al-Sehemi A.G.; Taha T.A.M.; El-Nasser K.S.; Al-Ghamdi A.A.; Boukhari M.; Palamanit A.; Hayat A.; Amin M.A.; Ismail W.I.N.B.W.
title Nanostructure engineering via intramolecular construction of carbon nitride as efficient photocatalyst for co2 reduction
title_short Nanostructure engineering via intramolecular construction of carbon nitride as efficient photocatalyst for co2 reduction
title_full Nanostructure engineering via intramolecular construction of carbon nitride as efficient photocatalyst for co2 reduction
title_fullStr Nanostructure engineering via intramolecular construction of carbon nitride as efficient photocatalyst for co2 reduction
title_full_unstemmed Nanostructure engineering via intramolecular construction of carbon nitride as efficient photocatalyst for co2 reduction
title_sort Nanostructure engineering via intramolecular construction of carbon nitride as efficient photocatalyst for co2 reduction
publishDate 2021
container_title Nanomaterials
container_volume 11
container_issue 12
doi_str_mv 10.3390/nano11123245
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85120072644&doi=10.3390%2fnano11123245&partnerID=40&md5=a120838c91f5e03fddf84ed3808edd41
description Light-driven heterogeneous photocatalysis has gained great significance for generating solar fuel; the challenging charge separation process and sluggish surface catalytic reactions significantly restrict the progress of solar energy conversion using a semiconductor photocatalyst. Herein, we propose a novel and feasible strategy to incorporate dihydroxy benzene (DHB) as a conjugated monomer within the framework of urea containing CN (CNU-DHBx) to tune the electronic conductivity and charge separation due to the aromaticity of the benzene ring, which acts as an electrondonating species. Systematic characterizations such as SPV, PL, XPS, DRS, and TRPL demonstrated that the incorporation of the DHB monomer greatly enhanced the photocatalytic CO2 reduction of CN due to the enhanced charge separation and modulation of the ionic mobility. The significantly enhanced photocatalytic activity of CNU–DHB15.0 in comparison with parental CN was 85 µmol/h for CO and 19.92 µmol/h of the H2 source. It can be attributed to the electron–hole pair separation and enhance the optical adsorption due to the presence of DHB. Furthermore, this remarkable modification affected the chemical composition, bandgap, and surface area, encouraging the controlled detachment of light-produced photons and making it the ideal choice for CO2 photoreduction. Our research findings potentially offer a solution for tuning complex charge separation and catalytic reactions in photocatalysis that could practically lead to the generation of artificial photocatalysts for efficient solar energy into chemical energy conversion. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
publisher MDPI
issn 20794991
language English
format Article
accesstype All Open Access; Gold Open Access; Green Open Access
record_format scopus
collection Scopus
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